US2024235408A1PendingUtilityA1
Hybrid modular multilevel rectifier (hmmr) for highly dynamic load applications
Assignee: GE ENERGY POWER CONVERSION TECHNOLOGY LTDPriority: Jan 11, 2023Filed: Nov 22, 2023Published: Jul 11, 2024
Est. expiryJan 11, 2043(~16.5 yrs left)· nominal 20-yr term from priority
F27D 2019/0037F27B 3/28F27B 3/085H05B 7/109H02M 7/493H02M 7/483H02M 1/007H02M 5/458H05B 7/005H05B 7/20H02M 7/487H02M 7/4835H02M 5/4585H02M 1/0095
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Claims
Abstract
Provided is an AC-DC-AC converter for delivering power to a load from a power source that includes a front-end converter, a load-end converter, and a DC link. The front-end converter being a hybrid modular multilevel rectifier, and the load-end converter being either a modular multilevel converter or a hybrid modular multilevel converter.
Claims
exact text as granted — not AI-modified1 . An AC-DC-AC converter for delivering power to a load from a power source, the AC-DC-AC converter comprising a front-end converter, a load-end converter, and a DC link, the front-end converter being a hybrid modular multilevel rectifier, the load-end converter being either a modular multilevel converter or a hybrid modular multilevel converter.
2 . The AC-DC-AC converter according to claim 1 , wherein the hybrid modular multilevel rectifier comprises at least one leg, each leg being connected to an AC connection and to the three DC connections, each leg comprises at least four diodes of a plurality of diodes and two branches, a first branch comprising at least one submodule of a plurality of submodules connected in series, the first branch being connected to a first diode anode and to a second diode cathode by a first submodule and to the AC connection, a second branch comprising at least one submodule of a plurality of submodules connected in series, the second branch being connected to the third diode anode and to the fourth diode cathode by a first submodule and to the AC connection, the first diode cathode being connected to the first DC connection, the second diode anode and the third diode cathode being connected to the second DC connection, the fourth diode anode being connected to the third DC connection.
3 . The AC-DC-AC converter according to claim 1 , wherein the hybrid modular multilevel rectifier comprises at least one leg, each leg being connected to an AC connection and to the three DC connections, each leg comprises at least four diodes of a plurality of diodes and two branches, each branch comprising at least one submodule of a plurality of submodules connected in series, the AC connection being connected to a first diode anode and to a second diode cathode, a first branch comprising at least one submodule of a plurality of submodules connected in series, the first branch being connected by a submodule to the first diode cathode and to a third diode anode, the second branch comprising at least one submodule of a plurality of submodules connected in series, a second branch being connected by a submodule to a second diode anode and to a fourth diode cathode, the third diode cathode being connected to the first DC connection, the first branch and the second branch being connected to the second DC connection, the fourth diode (anode being connected to the third DC connection.
4 . The AC-DC-AC converter according to claim 1 , wherein the hybrid modular multilevel rectifier comprises at least one leg, each leg being connected to an AC connection and to the three DC connections, each leg comprises at least four diodes of a plurality of diodes and two branches, each branch comprising at least one submodules of a plurality of submodules in series, the AC connection is connected to a first diode anode and to a second diode cathode, a first branch comprises at least one submodule of a plurality of submodules connected in series, the first branch is connected by a submodule to the first DC connection and to the cathodes of the first diode and a third diode, a second branch comprises at least one submodule of a plurality of submodules connected in series, the second branch being connected by a submodule to the third DC connection and to the anodes of the second diode and a fourth diode, the third diode anode and the fourth diode cathode are connected to the second DC connection.
5 . The AC-DC-AC converter according to claim 4 , wherein each branch comprises an inductor connected between a submodule of each branch and the diodes that each branch is connected to.
6 . The AC-DC-AC converter according to claim 1 , wherein the hybrid modular multilevel converter comprises at least one leg, each leg being connected to an AC connection and to the three DC connections, each leg comprising at least four controllable switches of a plurality of controllable switches connected in series and two branches, a first end of a first controllable switch connected to a first DC connection, a first end of a second controllable switch connected to a second end of the first controllable switch, the second end of the second controllable switch connected to a second DC connection, a first end of a third controllable switch connected to a second end of the second controllable switch and to the second DC connection, a first end of a fourth controllable switch connected to a second end of the third controllable switch, a second end of the fourth controllable switch is connected to the third DC connection, a first branch comprising at least one submodule of a plurality of submodules connected in series, the first branch being connected by a first submodule to a second end of the first controllable switch and to a first end of the second controllable switch, the first branch being connected to the AC connection, a second branch comprising at least one submodule a plurality of submodules connected in series, the second branch being connected by a first submodule to a second end of the third controllable switch and to a first end of the fourth controllable switch, the second branch being connected to the AC connection.
7 . The AC-DC-AC converter according to claim 1 , wherein the hybrid modular multilevel converter comprises at least one leg, each leg being connected to an AC connection and to the three DC connections, each leg comprising at least two pairs of controllable switches of a plurality of pairs of controllable switches connected in series with opposite polarities and at least two controllable switches of a plurality of controllable switches connected in series, a first end of a first controllable switch of the first pair of controllable switches connected to a first DC connection, a second end of a second controllable switch of the first pair of controllable switches is connected to the second end of the first controllable switch of the first pair of controllable switches, a first end of a third controllable switch is connected to the first end of the second controllable switch of the first pair of controllable switches, the second end of the third controllable switch is connected to the AC connection, a first end of a fourth controllable switch of the second pair of controllable switches is connected to a third DC connection, a second end of a fifth controllable switch of the second pair of controllable switches is connected to a second end of the fourth controllable switch of the second pair of controllable switches, a second end of a sixth controllable switch is connected to the first end of the fifth controllable switch of the second pair of controllable switches, a first end of the sixth controllable switch is connected to the AC connection, a first branch comprising at least one submodule of a plurality of submodules connected in series, the first branch being connected by a first submodule to the first end of the second controllable switch of the first pair of controllable switches and to the first end of the third controllable switch, the first branch being connected to the second DC connection, a second branch comprising at least one submodule of a plurality of submodules, the second branch being connected by a first submodule to the first end of the fifth controllable switch of the second pair of controllable switches and to the second end of the sixth controllable switch, the second branch being connected to the second DC connection.
8 . The AC-DC-AC converter according to claim 1 , wherein the hybrid modular multilevel converter comprises at least one leg, each leg being connected to an AC connection and to the three DC connections, each leg comprises at least four controllable switches of a plurality of switches connected in series and two branches, a first branch comprising at least one submodule of a plurality of submodules connected in series, the first branch being connected to the first DC connection, a first submodule of the first branch being connected to a first end of a first controllable switch and to a first end of a third controllable switch, a second branch comprising at least one submodule of a plurality of submodules connected in series, the second branch being connected to the third DC connection, a first submodule of the second branch being connected to the second end of the second controllable switch and to the second end of the fourth controllable switch, the second end of the first controllable switch and the first end of the second controllable switch being connected to the second DC connection, the second end of the third controllable switch and the first end of the fourth controllable switch being connected to the AC connection.
9 . The AC-DC-AC converter according to claim 3 , wherein each branch (comprises an inductor connected between a submodule of each branch and the DC connection that each branch is connected to.
10 . The AC-DC-AC converter according to claim 2 , wherein each branch comprises an inductor connected between a submodule of each branch and the AC connection that each branch is connected to.
11 . The AC-DC-AC converter according to claim 7 , wherein all the submodules are half-bridge submodules.
12 . The AC-DC-AC converter according to claim 6 , wherein all the submodules are full-bridge submodules or hybrid full-bridge submodules.
13 . The AC-DC-AC converter according to claim 2 , wherein all the submodules are half-bridge submodules, full-bridge submodules or a combination of both.
14 . The AC-DC-AC converter according to claim 4 , wherein all the submodules are full-bridge submodules.
15 . The AC-DC-AC converter according to claim 2 , wherein a submodule is a half-bridge submodule, a full-bridge submodule or a hybrid full-bridge submodule.
16 . The AC-DC-AC converter according to claim 11 , wherein an half-bridge submodule comprises a first connection connected to a second end of a first controllable switch and to a first end of a second controllable switch, a second connection connected to the second end of the second controllable switch, a capacitor connected to the first end of the first controllable switch and to both the second connection and the second end of the second controllable switch.
17 . The AC-DC-AC converter according to claim 12 , wherein a full-bridge submodule comprises a first connection connected to a second end of a first controllable switch and to a first end of a second controllable switch, a second connection is connected to a second end of a third controllable switch and to a first end of a fourth controllable switch, a capacitor being connected to both first ends of the first controllable switch and third controllable switch, and to both second ends of the second controllable switch and fourth controllable switch.
18 . The AC-DC-AC converter according to claim 12 , wherein a hybrid full-bridge submodule comprises a first connection connected to the first diode anode and to a first end of a second controllable switch, a second connection connected to a second end of the third controllable switch and to the fourth diode cathode, a capacitor connected to the first diode cathode and to the first end of the third controllable switch, and to the second end of the second controllable switch and to the fourth diode anode.
19 . The AC-DC-AC converter according to claim 6 , wherein a controllable switch comprises at least a transistor and a freewheeling diode, the transistor source and the freewheeling diode cathode being connected to the first end of the controllable switch, the transistor drain and the freewheeling diode anode being connected to the second end of the controllable switch, the transistor gate being connected to the control end of the controllable switch.
20 . The AC-DC-AC converter according to claim 19 , wherein a transistor is an insulated-gate bipolar transistor, an injection-enhanced gate transistor, notably Si-based or a metal-oxide-semiconductor field-effect transistors, notably SiC-based.
21 . The AC-DC-AC converter according to claim 6 , wherein the controllable switch includes a silicon-controlled rectifier and an antiparallel freewheeling diode or the controllable switch includes a silicon-controlled rectifier and an antiparallel silicon-controlled rectifier.
22 . An Electric arc furnace apparatus comprising an AC-DC-AC converter according to claim 1 , connected by its load-end converter to an electric arc furnace and by its front-end converter to a power source, the apparatus further comprising at least one controller connected to the control end of each controllable switch of the AC-DC-AC converter, wherein the at least one controller commands the switching of the front-end converter and the load-end converter according to the amount of power to transmit from the power source to the electric arc furnace.
23 . The Electric arc furnace apparatus according to claim 22 , wherein a transformer is connected between either the power source and the front-end converter or between the load-end converter and the electronic arc furnace, the at least one controller commands the front-end converter and the load-end converter.Join the waitlist — get patent alerts
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